Cav2.3 channel function and Zn2+-induced modulation: potential mechanisms and (patho)physiological relevance.

Felix Neumaier, Toni Schneider, Walid Albanna
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引用次数: 5

Abstract

Voltage-gated calcium channels (VGCCs) are critical for Ca2+ influx into all types of excitable cells, but their exact function is still poorly understood. Recent reconstruction of homology models for all human VGCCs at atomic resolution provides the opportunity for a structure-based discussion of VGCC function and novel insights into the mechanisms underlying Ca2+ selective flux through these channels. In the present review, we use these data as a basis to examine the structure, function, and Zn2+-induced modulation of Cav2.3 VGCCs, which mediate native R-type currents and belong to the most enigmatic members of the family. Their unique sensitivity to Zn2+ and the existence of multiple mechanisms of Zn2+ action strongly argue for a role of these channels in the modulatory action of endogenous loosely bound Zn2+, pools of which have been detected in a number of neuronal, endocrine, and reproductive tissues. Following a description of the different mechanisms by which Zn2+ has been shown or is thought to alter the function of these channels, we discuss their potential (patho)physiological relevance, taking into account what is known about the magnitude and function of extracellular Zn2+ signals in different tissues. While still far from complete, the picture that emerges is one where Cav2.3 channel expression parallels the occurrence of loosely bound Zn2+ pools in different tissues and where these channels may serve to translate physiological Zn2+ signals into changes of electrical activity and/or intracellular Ca2+ levels.

Abstract Image

Abstract Image

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Cav2.3通道功能和Zn2+诱导的调节:潜在机制和(病理)生理相关性。
电压门控钙通道(VGCCs)对于Ca2+内流到所有类型的可兴奋细胞至关重要,但其确切功能仍然知之甚少。最近在原子分辨率上重建了所有人类VGCC的同源模型,为基于结构的VGCC功能讨论提供了机会,并为通过这些通道的Ca2+选择通量的机制提供了新的见解。在本综述中,我们以这些数据为基础,研究了Cav2.3 VGCCs的结构、功能和Zn2+诱导调制,Cav2.3 VGCCs介导天然r型电流,属于该家族中最神秘的成员。它们对Zn2+的独特敏感性和多种Zn2+作用机制的存在有力地证明了这些通道在内源性松散结合的Zn2+的调节作用中所起的作用,这些通道在许多神经元、内分泌和生殖组织中都被检测到。在描述了Zn2+已显示或被认为改变这些通道功能的不同机制之后,我们讨论了它们的潜在(病理)生理相关性,并考虑了不同组织中细胞外Zn2+信号的大小和功能。虽然还远未完成,但出现的图像是Cav2.3通道表达与不同组织中松散结合的Zn2+池的发生相似,并且这些通道可能用于将生理Zn2+信号转化为电活动和/或细胞内Ca2+水平的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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